O2-Coupled Copper–Cysteine Redox Chemistry Drives Oxidative Modifications and Higher-Order Assembly of Monomeric Transthyretin

Abstract Copper–cysteine (Cu–Cys) coordination is pervasive in biology, yet how Cu–thiol redox chemistry engages O2 and translates into protein-level consequences remains incompletely understood. Here, we establish a generalizable protein-based platform that directly captures O2-coupled Cu(II)–Cys redox processes and delineates their structural and functional outcomes. Integrated spectroscopic, mass spectrometric, and computational investigations reveal that Cu(II) coordination to a protein Cys residue initiates redox cycling that generates thiyl radicals and/or disulfide radical anions. This chemically defined process drives disulfide bond formation together with O2-dependent oxidative transformations, producing site-specific Cys modifications, dityrosine cross-links, and higher-order protein assemblies. Under these conditions, these structural changes abolish the protein’s anti-amyloidogenic activity and result in apoptotic responses. By directly linking Cu–thiol redox chemistry to protein oxidation and aggregation, this work establishes a fundamental chemical principle by which redox-active metal ions govern protein fate under aerobic conditions. More broadly, these findings provide a mechanistic framework for understanding how metal-mediated oxidative chemistry contributes to protein misfolding and aggregation in human diseases.

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Publication Details

Journal
ACS Central Science
Published
2026-10-05
DOI
https://doi.org/10.1021/acscentsci.6c00619
Primary Topic
Redox biology and oxidative stress
Type
article
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article

O2-Coupled Copper–Cysteine Redox Chemistry Drives Oxidative Modifications and Higher-Order Assembly of Monomeric Transthyretin

Mi Hee Lim, Yelim Yi, Kiyoung Park, Jin Hae Kim et al.
ACS Central Science
Redox biology and oxidative stress
article

O2-Coupled Copper–Cysteine Redox Chemistry Drives Oxidative Modifications and Higher-Order Assembly of Monomeric Transthyretin

Mi Hee Lim, Yelim Yi, Kiyoung Park, Jin Hae Kim, Srinivasan Muniyappan, Wooyeol Ryu, Bokyung Kim
article en

Abstract

Abstract Copper–cysteine (Cu–Cys) coordination is pervasive in biology, yet how Cu–thiol redox chemistry engages O2 and translates into protein-level consequences remains incompletely understood. Here, we establish a generalizable protein-based platform that directly captures O2-coupled Cu(II)–Cys redox processes and delineates their structural and functional outcomes. Integrated spectroscopic, mass spectrometric, and computational investigations reveal that Cu(II) coordination to a protein Cys residue initiates redox cycling that generates thiyl radicals and/or disulfide radical anions. This chemically defined process drives disulfide bond formation together with O2-dependent oxidative transformations, producing site-specific Cys modifications, dityrosine cross-links, and higher-order protein assemblies. Under these conditions, these structural changes abolish the protein’s anti-amyloidogenic activity and result in apoptotic responses. By directly linking Cu–thiol redox chemistry to protein oxidation and aggregation, this work establishes a fundamental chemical principle by which redox-active metal ions govern protein fate under aerobic conditions. More broadly, these findings provide a mechanistic framework for understanding how metal-mediated oxidative chemistry contributes to protein misfolding and aggregation in human diseases.

ACS Central Science
Korea Advanced Institute of Science and Technology (KR), Daegu Gyeongbuk Institute of Science and Technology (KR)
Openalex Percentile: Top 21%
Redox biology and oxidative stress
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